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Cis-regulatory Changes at FLOWERING LOCUS T Mediate Natural Variation in Flowering Responses of Arabidopsis thaliana

机译:花的位置T顺式调节变化介导拟南芥开花反应的自然变化。

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Flowering time, a critical adaptive trait, is modulated by several environmental cues. These external signals converge on a small set of genes that in turn mediate the flowering response. Mutant analysis and subsequent molecular studies have revealed that one of these integrator genes, FLOWERING LOCUS T ( FT ), responds to photoperiod and temperature cues, two environmental parameters that greatly influence flowering time. As the central player in the transition to flowering, the protein coding sequence of FT and its function are highly conserved across species. Using QTL mapping with a new advanced intercross-recombinant inbred line (AI-RIL) population, we show that a QTL tightly linked to FT contributes to natural variation in the flowering response to the combined effects of photoperiod and ambient temperature. Using heterogeneous inbred families (HIF) and introgression lines, we fine map the QTL to a 6.7 kb fragment in the FT promoter. We confirm by quantitative complementation that FT has differential activity in the two parental strains. Further support for FT underlying the QTL comes from a new approach, quantitative knockdown with artificial microRNAs (amiRNAs). Consistent with the causal sequence polymorphism being in the promoter, we find that the QTL affects FT expression. Taken together, these results indicate that allelic variation at pathway integrator genes such as FT can underlie phenotypic variability and that this may be achieved through cis -regulatory changes.
机译:开花时间是一个关键的适应性状,受多种环境因素的调节。这些外部信号汇聚在少数基因上,这些基因又介导了开花反应。突变分析和随后的分子研究表明,这些整合基因之一,FLOWERING LOCUS T(FT),对光周期和温度信号有反应,这两个环境参数极大地影响了开花时间。作为过渡到开花的核心角色,FT的蛋白质编码序列及其功能在整个物种中高度保守。使用新的先进的交叉杂交近交系(AI-RIL)种群的QTL定位,我们显示与FT紧密相关的QTL有助于开花期对光周期和环境温度的综合影响的自然变化。使用异种自交系(HIF)和基因渗入系,我们将QTL精细映射到FT启动子中的6.7 kb片段。我们通过定量互补证实了FT在两个亲本菌株中具有差异活性。 QTL基础的FT的进一步支持来自一种新方法,即使用人工microRNA(amiRNA)进行定量敲低。与启动子中的因果序列多态性一致,我们发现QTL影响FT表达。综上,这些结果表明,途径整合子基因(如FT)的等位基因变异可以成为表型变异的基础,而这可以通过顺式调控改变来实现。

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